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新冠疫情期间(2019 年 11 月至 2020 年 5 月)针对亚裔和亚裔美国人的仇恨推文的空间分布。

Spatial Distribution of Hateful Tweets Against Asians and Asian Americans During the COVID-19 Pandemic, November 2019 to May 2020.

机构信息

Alexander Hohl, Moongi Choi, Richard M. Medina, and Neng Wan are with the Department of Geography, College of Social and Behavioral Sciences, University of Utah, Salt Lake City. Aggie J. Yellow Horse is with the School of Social Transformation, Arizona State University, Tempe. Ming Wen is with the Department of Sociology, College of Social and Behavioral Sciences, University of Utah, Salt Lake City.

出版信息

Am J Public Health. 2022 Apr;112(4):646-649. doi: 10.2105/AJPH.2021.306653.

Abstract

To illustrate the spatiotemporal distribution of geolocated tweets that contain anti-Asian hate language in the contiguous United States during the early phase of the COVID-19 pandemic. We used a data set of geolocated tweets that match with keywords reflecting COVID-19 and anti-Asian hate and identified geographical clusters using the space-time scan statistic with Bernoulli model. Anti-Asian hate language surged between January and March 2020. We found clusters of hate across the contiguous United States. The strongest cluster consisted of a single county (Ross County, Ohio), where the proportion of hateful tweets was 312.13 times higher than for the rest of the country. Anti-Asian hate on Twitter exhibits a significantly clustered spatiotemporal distribution. Clusters vary in size, duration, strength, and location and are scattered across the entire contiguous United States. Our results can inform decision-makers in public health and safety for allocating resources for place-based preparedness and response for pandemic-induced racism as a public health threat. (. 2022;112(4):646-649. https://doi.org/10.2105/AJPH.2021.306653.

摘要

为了说明在 COVID-19 大流行早期,美国本土带有反亚裔仇恨言论的地理位置标记推文的时空分布情况。我们使用了一组地理位置标记推文的数据,这些推文与反映 COVID-19 和反亚裔仇恨的关键词相匹配,并使用具有伯努利模型的时空扫描统计量来识别地理集群。反亚裔仇恨言论在 2020 年 1 月至 3 月期间激增。我们发现了美国本土各地的仇恨集群。最强的集群由一个县(俄亥俄州罗斯县)组成,其中仇恨推文的比例比全国其他地区高 312.13 倍。推特上的反亚裔仇恨表现出明显的时空聚类分布。集群的大小、持续时间、强度和位置各不相同,分布在美国整个本土地区。我们的研究结果可以为决策者提供信息,以便为基于地点的大流行引发的种族主义的备灾和应对工作分配资源,将其作为公共卫生威胁。(2022;112(4):646-649. https://doi.org/10.2105/AJPH.2021.306653.

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